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Suku, M.

Publications and source records attributed to Suku, M..

2 recordsLinked to original sources

Synergistic generation of cardiac resident-like macrophages and cardiomyocyte maturation in tissue engineered platforms

Cardiovascular disease stands as the leading cause of death globally, claiming approximately 19million lives in 2020. On the contrary, the development of cardiovascular drugs is experiencing a decline, largely due to the bottleneck in understanding the pathophysiology of various heart diseases and assessing the effects of drugs on healthy human hearts. The development of induced pluripotent stem cell (iPSC) technology and the availability of cardiac cell types in vitro, has resulted in a surge in efforts to fabricate human cardiac models for disease modelling and drug discovery applications. Although numerous attempts evidence successful fabrication of 3 dimensional (3D) engineered heart tissues, the innate immune cell population of the myocardium - particularly cardiac macrophages, was until recently, overlooke. With increasing appreciation of the interactions between cardiomyocytes and macrophages in the myocardium, in this work, isogenic populations of cardiac resident-like macrophages and cardiomyocytes were generated using iPSCs, to understand the interactions between the two cell types in both 2D and 3D settings, and subjected to electric stimulation. After characterizing iPSC-derived macrophages (iMacs) and iPSC-derived cardiomyocytes (iCMs) in depth, the conditioning of iMacs to align to a cardiac resident macrophage-like phenotype in the presence of iCMs in 2D culture was explored. In co-culture with iCMs, iMacs upregulated known genes expressed by cardiac resident macrophages. Additionally, in co-culture with iMacs, iCMs displayed an elongated morphology, improved calcium function and an increase in known maturation genes such as the ratio between MYH7 and MYH6 as well as SERCA2. In a 2D setting, iMacs showed the ability to electrically couple with iCMs and facilitate synchronous beating in iCM cultures. The 2D characterisation was translated into an engineered cardiac tissue model, wherein, improvement in tissue characteristics in the presence of iMacs was demonstrated in terms of increased cell alignment, enhanced cardiomyocyte elongation, physiologically relevant beat rates and improved tissue compaction. Taken together, these findings may open new avenues to use iMacs in engineered cardiac tissue models, not only as an innate immune cell source, but also as a support cell type to improve cardiomyocyte function and maturation.

bioengineering↗

2P-FLIM unveils time-dependent metabolic shifts during osteogenic differentiation with a key role of lactate to fuel osteogenesis via glutaminolysis identified

Human mesenchymal stem cells (hMSCs) fuel discrete biosynthetic pathways to multiply and differentiate into specific cell lineages; with undifferentiated hMSCs showing reliance on glycolysis. hMSCs differentiating towards an osteogenic phenotype rely on oxidative phosphorylation as an energy source. Here, the metabolic profile of hMSCs was profiled during osteogenic differentiation over 14 days using a non-invasive live-cell imaging platform- two-photon fluorescence lifetime imaging microscopy (2P-FLIM) which images and measures NADH fluorescence. During osteogenesis, we observe a higher dependence on oxidative phosphorylation for cellular energy; concomitant with an increased reliance on anabolic pathways. We validated this metabolic profile using qPCR and extracellular metabolite analysis and observed a higher reliance on glutaminolysis in the earlier time-points of osteogenic differentiation. Based on the results obtained, we sought to promote glutaminolysis further during osteogenic differentiation. An indirect method of promoting glutaminolysis was explored so as to not impact cellular differentiation. As Lactate has been shown to promote glutamine uptake via c-Myc activation triggering expression of glutamine transmembrane transporters and glutaminase 1; we chose to increase extracellular lactate concentrations to drive increased glutaminolysis rates leading to higher levels of mineral deposition and osteogenic gene expression. Lactate supplementation of osteogenic medium also promoted upregulation of lactate metabolism and increased the expression of transmembrane cellular lactate transporters. Higher rates of lactate dehydrogenase gene expression coupled with higher NADH fluorescence intensity demonstrate a conversion of lactate to pyruvate. During this conversion, NADH is formed by the reverse enzymatic reaction of lactate dehydrogenase resulting in increased NADH fluorescence intensity. In order to evaluate the importance of glutaminolysis and lactate metabolism in osteogenic differentiation, these metabolic pathways were shut down using BPTES and -CHC respectively which led to reduced hMSC mineralisation. In summary, we demonstrate that hMSCs osteogenic differentiation has a temporal metabolic profile and shift that is observed as early as day 3 of cell culture. Osteogenic differentiation was demonstrated to be directly dependent on OxPhos and on glutaminolysis and validated using biochemical assays. Furthermore, extracellular lactate is an essential metabolite to ensure osteogenic differentiation as a metabolic fuel and signalling molecule to promote glutaminolysis. These findings have significant impact in generating potent approaches towards bone tissue engineering in vitro and in vivo by engaging directly with metabolite driven osteogenesis.

bioengineering↗